Материал: [2.1] 3D Imaging, Analysis and Applications-Springer-Verlag London (2012)

Внимание! Если размещение файла нарушает Ваши авторские права, то обязательно сообщите нам

9 3D Digital Elevation Model Generation

411

74.Hodgson, M.E., Bresnahan, P.: Accuracy of airborne LIDAR-derived elevation: empirical assessment and error budget. Photogramm. Eng. Remote Sens. 70(3), 331–339 (2004)

75.Hodgson, M.E., et al.: An evaluation of LIDAR-derived elevation and terrain slope in leaf-off conditions. Photogramm. Eng. Remote Sens. 71(7), 817–823 (2005)

76.Hofmann, A.D., Maas, H.-G., Streilein, A.: Knowledge-based building detection based on laser scanner data and topographic map information. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 34(3A), 169–174 (2002)

77.Hogan, R.J., et al.: Characteristics of mixed-phase clouds. I: LIDAR, radar and aircraft observations from CLARE98. Q. J. R. Meteorol. Soc. 129(592), 2089–2116 (2003)

78.Huising, E.J., Gomes Pereira, L.M.: Errors and accuracy estimates of laser data acquired by various laser scanning systems for topographic applications. ISPRS J. Photogramm. Remote Sens. 53, 245–261 (1998)

79.Hunt, B.R.: Matrix formulation of the reconstruction of phase values from phase differences. J. Opt. Soc. Am. 69, 393–399 (1979)

80.Hutchinson, M.F.: Development of a continent-wide DEM with applications to terrain and climate analysis. In: Goodchild, M.F., et al. (eds.) Environmental Modeling with GIS. Oxford University Press, Oxford (1993)

81.Hyyppä, H., et al.: Factors affecting the quality of DTM generation in forested areas. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3/W19), 85–90 (2005)

82.Jacobsen, K.: DEM generation from satellite data. In: Remote Sensing in Transition—23rd EARSeL Symposium, Ghent, Belgium (2003)

83.Jain, A.K., Duin, R.P.W., Mao, J.: Statistical pattern recognition: a review. IEEE Trans. Pattern Anal. Mach. Intell. 22(1) (2000)

84.James, T.D., et al.: Extracting photogrammetric ground control from LIDAR DEMs for change detection. Photogramm. Rec. 21(116), 312–328 (2006)

85.Jet Propulsion Laboratory: ASTER Global Digital Elevation Map Announcement. http://asterweb.jpl.nasa.gov/gdem.asp (2009)

86.Jong-Sen, L., et al.: A new technique for noise filtering of SAR interferometric phase images. IEEE Trans. Geosci. Remote Sens. 36(5), 1456–1465 (1998)

87.Kanade, T., Okutomi, M.: A stereo matching algorithm with an adaptive window: theory and experiment. IEEE Trans. Pattern Anal. Mach. Intell. 16(9), 920–932 (1994)

88.Kervyn, F.: Modeling topography with SAR interferometry: illustrations of a favourable and less favourable environment. Comput. Geosci. 27(9), 1039–1050 (2001)

89.Kidner, D.B., et al.: Coastal monitoring with LIDAR: challenges, problems, and pitfalls. Proc. SPIE 5574, 80–89 (2004)

90.Kilian, J., Haala, N., Englich, M.: Capture and evaluation of airborne laser data. Int. Arch. Photogramm. Remote Sens. 31(3), 383–388 (1996)

91.Kobler, A., et al.: Repetitive interpolation: a robust algorithm for DTM generation from aerial laser scanner data in forested terrain. Remote Sens. Environ. 108(1), 9–23 (2007)

92.Kornus, W., et al.: DEM generation from SPOT-5 3-fold along track stereoscopic imagery using autocalibration. ISPRS J. Photogramm. Remote Sens. 60(3), 147–159 (2006)

93.Kraus, K., Pfeifer, N.: Determination of terrain models in wooded areas with airborne laser scanner data. ISPRS J. Photogramm. Remote Sens. 53, 193–203 (1998)

94.Kraus, K., Pfeifer, N.: Advanced DTM generation from LIDAR data. ISPRS J. Photogramm. Remote Sens. 53, 193–203 (2001)

95.Krieger, G., et al.: TanDEM-X: a satellite formation for high-resolution SAR interferometry. IEEE Trans. Geosci. Remote Sens. 45(11), 3317–3341 (2007)

96.Krzystek, P.: Filtering of laser scanning data in forest areas using finite elements. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3/W13) (2003). 6 pages

97.Lanari, R., et al.: Generation of digital elevation models by using SIR-C/X-SAR multifrequency two-pass interferometry: the Etna case study. IEEE Trans. Geosci. Remote Sens. 34(5), 1097–1114 (1996)

98.Lee, H.-Y., et al.: Extraction of digital elevation models from satellite stereo images through stereo matching based on epipolarity and scene geometry. Image Vis. Comput. 21(9), 789– 796 (2003)

412

H. Wei and M. Bartels

99.Li, H., Liao, G.: An estimation method for InSAR interferometric phase based on MMSE criterion. IEEE Trans. Geosci. Remote Sens. 48(3), 1457–1469 (2010)

100.Li, J., et al.: The research and design of the base-height ratio for the three linear array camera of satellite photogrammetry. In: International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences, XXXVII, Part B1, Beijing (2008)

101.Lillesand, T.M., Kiefer, R.W., Chipman, J.W.: Remote Sensing and Image Interpretation. Wiley, New York (2004)

102.Lin, Q., Vesecky, J.F., Zebker, H.A.: New approaches in interferometric SAR data processing. IEEE Trans. Geosci. Remote Sens. 30(3), 560–567 (1992)

103.Loffeld, O., et al.: Phase unwrapping for SAR interferometry—a data fusion approach by Kalman filtering. IEEE Trans. Geosci. Remote Sens. 46(1), 47–58 (2008)

104.Löffler, G.: Aspects of raster DEM data derived from laser measurements. Int. Arch. Photogramm. Remote Sen. Spatial Inf. Sci. XXXIV(3/W13) (2003). 5 pages

105.Lohr, U.: Laserscan DEM for various applications. In: Fritsch, M.E.D., Sester, M. (eds.) ISPRS Commission IV Symposium on GIS—Between Visions and Applications, vol. 32/4 (1998)

106.Lowe, D.G.: Distinctive image features from scale-invariant keypoints. Int. J. Comput. Vis. 60(2), 91–110 (2004)

107.Luethya, J., Stengele, R.: 3D mapping of Switzerland—challenges and experiences. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3/W19), 42–47 (2005)

108.Maas, H.-G.: Akquisition von 3D-GIS Daten durch Flugzeuglaserscanning. Kartogr. Nachr. 55(1), 3–11 (2005)

109.Marr, D., Poggio, T.: A computational theory of human stereo vision. Proc. R. Soc. Lond., Ser. B 204(1156), 301–328 (1979)

110.Martinez-Espla, J.J., Martinez-Marin, T., Lopez-Sanchez, J.M.: A particle filter approach for InSAR phase filtering and unwrapping. IEEE Trans. Geosci. Remote Sens. 47(4), 1197–1211 (2009)

111.Mason, D.C., Scott, T.R., Wang, H.-J.: Extraction of tidal channel networks from airborne scanning laser altimetry. ISPRS J. Photogramm. Remote Sens. 61(2), 67–83 (2006)

112.Massonnet, D., Rabaute, T.: Radar interferometry: limits and potential. IEEE Trans. Geosci. Remote Sens. 31(2), 455–464 (1993)

113.Mora, O., et al.: Generation of accurate DEMs using DInSAR methodology (TopoDInSAR). IEEE Geosci. Remote Sens. Lett. 3(4), 551–554 (2006)

114.Nardinocchi, C., Forlani, G., Zingaretti, P.: Classification and filtering of laser data. Int. Arch. Photogramm. Remote Sen. Spatial Inf. Sci. XXXIV(3/W13) (2003). 8 pages

115.Oliver, C., Quegan, S.: Understanding Synthetic Aperture Radar Images. Artech House, London (1998)

116.O’Neill, M., Denos, M.: Automated system for coarse-to-fine pyramidal area correlation stereo matching. Image Vis. Comput. 14(3), 225–236 (1996)

117.Otto, G.P., Chau, T.K.W.: Region-growing algorithm for matching of terrain images. Image Vis. Comput. 7(2), 83–94 (1989)

118.Oude Elberink, S., Maas, H.-G.: The use of anisotropic height texture measures for the segmentation of laser scanner data. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIII(B3), 678–684 (2000)

119.Pertl, A.: Digital image correlation with the analytical plotter PLANICOMP C-100. In: Int. Archives of Photogrammetry and Remote Sensing, XXV, A3b, Commission III, Rio de Janeiro (1984)

120.Pfeifer, N., Stadler, P., Briese, C.: Derivation of digital terrain models in the SCOP++ environment. In: Proceedings of OEEPE Workshop on Airborne Laserscanning and Interferometric SAR for Detailed Digital Terrain Models (2001)

121.Pritt, M.D., Shipman, J.S.: Least-squares two-dimensional phase unwrapping using FFT’s. IEEE Trans. Geosci. Remote Sens. 32(3), 706–708 (1994)

9 3D Digital Elevation Model Generation

413

122.Raber, G.T., et al.: Creation of digital terrain models using an adaptive LIDAR vegetation point removal process. Photogramm. Eng. Remote Sens. 68(12), 1307–1315 (2002)

123.Rabus, B., et al.: The shuttle radar topography mission—a new class of digital elevation models acquired by spaceborne radar. ISPRS J. Photogramm. Remote Sens. 57(4), 241–262 (2003)

124.Raney, R.K., et al.: Precision SAR processing using chirp scaling. IEEE Trans. Geosci. Remote Sens. 32(4), 786–799 (1994)

125.Reinartz, P., et al.: Accuracy analysis for DSM and orthoimages derived from SPOT HRS stereo data using direct georeferencing. ISPRS J. Photogramm. Remote Sens. 60(3), 160– 169 (2006)

126.Rodriguez, E., Martin, J.M.: Theory and design of interferometric synthetic aperture radars. IEE Proc., F, Radar Signal Process. 139(2), 147–159 (1992)

127.Rogers, A.E.E., Ingalls, R.P.: Venus: mapping the surface reflectivity by radar interferometry. Science 165, 797–799 (1969)

128.Roggero, M.: Airborne laser scanning: clustering in raw data. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 34(3/W4), 227–232 (2001)

129.Rosen, P.A., et al.: Synthetic aperture radar interferometry. Proc. IEEE 88(3), 333–382 (2000)

130.Rosenfeld, A.: Image analysis: problems, progress and prospects. Pattern Recognit. 17(1), 3–12 (1984)

131.Rottensteiner, F., Briese, C.: Automatic generation of building models from LIDAR data and the integration of aerial images. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. ISPRS 34(3/W13), 174–180 (2003)

132.Rottensteiner, F., et al.: Building detection by fusion of airborne laser scanner data and multispectral images: performance evaluation and sensitivity analysis. ISPRS J. Photogramm. Remote Sens. 62, 135–149 (2007)

133.Rottensteiner, F., et al.: Using the Dempster-Shafer method for the fusion of LIDAR data and multi-spectral images for building detection. Inf. Fusion 6, 283–300 (2005)

134.Rottensteiner, F., et al.: Automated delineation of roof planes from LIDAR data. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3/W19), 42–47 (2005)

135.Rufino, G., Moccia, A., Esposito, S.: DEM generation by means of ERS tandem data. IEEE Trans. Geosci. Remote Sens. 36(6), 1905–1912 (1998)

136.Schenk, T., Csathó, B.: Fusion of LIDAR data and aerial imagery for a more complete surface description. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3A/B), 310–317 (2002)

137.Schenk, T., Seo, S., Csathó, B.: Accuracy study of airborne laser scanning data with photogrammetry. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3/W4), 113– 118 (2001)

138.Schnadt, K., Katzenbeißer, R.: Unique airborne fiber scanner technique for applicationoriented LIDAR products. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(8/W2), 19–23 (2004)

139.Silván-Cárdenas, J.L., Wang, L.: A multi-resolution approach for filtering LIDAR altimetry data. ISPRS J. Photogramm. Remote Sens. 61, 11–22 (2006)

140.Silván-Cárdenas, J.L., Wang, L.: The multiscale Hermite transform for local orientation analysis. IEEE Trans. Image Process. 15(5), 1236–1253 (2006)

141.Silván-Cárdenas, J.L., Wang, L.: Multiscale-based filtering of LIDAR altimetry data. MAPPS/ASPRS, I (2006). 6 pages

142.Sithole, G.: Filtering of laser altimetry data using a slope adaptive filter. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3/W4), 203–210 (2001)

143.Sithole, G., Vosselman, G.: Experimental comparison of filter algorithms for bare-earth extraction from airborne laser scanning point clouds. ISPRS J. Photogramm. Remote Sens. 59(1–2), 85–101 (2004)

144.Sohn, G.: Extraction of buildings from high-resolution satellite data and LIDAR. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXV(7), 1036–1042 (2004)

414

H. Wei and M. Bartels

145.Sohn, G., Dowman, I.: Terrain surface reconstruction by the use of tetrahedron model with the MDL criterion. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3A), 336–344 (2002)

146.Tarsha-Kurdi, F., et al.: New approach for automatic detection of buildings in airborne laser scanner. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3), 25–30 (2006)

147.Toutin, T.: Error tracking in ikonos geometric processing using a 3D parametric model. Photogramm. Eng. Remote Sens. 69(1), 43–51 (2003)

148.Toutin, T.: Spatiotriangulation with multisensor VIR/SAR images. IEEE Trans. Geosci. Remote Sens. 42(10), 2096–2103 (2004)

149.Toutin, T.: Comparison of stereo-extracted DTM from different high-resolution sensors: SPOT-5, EROS-A, IKONOS-II, and QuickBird. IEEE Trans. Geosci. Remote Sens. 42(10), 2121–2129 (2004)

150.Toutin, T.: Generation of DSMs from SPOT-5 in-track HRS and across-track HRG stereo data using spatiotriangulation and autocalibration. ISPRS J. Photogramm. Remote Sens. 60(3), 170–181 (2006)

151.Toutin, T., Gray, L.: State-of-the-art of elevation extraction from satellite SAR data. ISPRS J. Photogramm. Remote Sens. 55(1), 13–33 (2000)

152.Viñas, O., et al.: Combined use of LIDAR and QuickBird data for the generation of land use maps. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(7), 155–159 (2006)

153.von Hansen, W., Vögtle, T.: Extraktion der geländeoberfläche aus flugzeuggetragenen Laserscanner-Aufnahmen. Photogramm. Fernerkund. Geoinf. (PFG) 4, 229–236 (1999)

154.Vosselman, G.: Building reconstruction using planar faces in very high density height data. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 32(3/2W5), 87–92 (1999)

155.Vosselman, G.: Slope based filtering of laser altimetry data. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 33(B3/2), 935–942 (2000)

156.Vosselman, G., Dijkman, S.: 3D building model reconstruction from point clouds and ground plans. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXIV(3/W4), 37–43 (2001)

157.Vosselman, G., Suveg, I.: Map based building reconstruction from laser data and images. Proc. Autom. Extract. Man-Made Obj. Aerial Space Images 32(3/2W5), 231–239 (2001)

158.Vu, T.T., Tokunaga, M.: Wavelet and scale-space theory in segmentation of airborne laser scanner data. In: Proc. 22nd Asian Conference on Remote Sensing, I (2001). 5 pages

159.Vu, T.T., Tokunaga, M.: Wavelet-based clustering method to detect building in urban area from airborne laser scanner data. In: MapAsia 2002, I (2002). 2 pages

160.Vu, T.T., Tokunaga, M.: Wavelet-based filtering the cloud points derived from airborne laser scanner. In: Proceeding of the 23rd Asian Conference on Remote Sensing, I (2002). 2 pages

161.Vu, T.T., et al.: Wavelet-based system for classification of airborne laser scanner data. In: IEEE International Geoscience and Remote Sensing Symposium, IGARSS 2003, vol. 7, pp. 4404–4406 (2003)

162.Vu, T.T., Tokunaga, M., Yamazaki, F.: In: LIDAR signatures to update Japanese building inventory database. 25th Asian Conference on Remote Sensing, I (2004). 6 pages

163.Wack, R., Stelzl, H.: Laser DTM generation for South-Tyrol and 3D-visualization. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3/W19), 48–53 (2005)

164.Wack, R., Wimmer, A.: Digital terrain models from airborne laser scanner data—a grid based approach. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 34(3B), 293–296 (2002)

165.Wang, Y.: Principles and applications of structural image matching. ISPRS J. Photogramm. Remote Sens. 53(3), 154–165 (1998)

166.Weed, C.A., et al.: Classification of LIDAR data using a lower envelope follower and gradient-based operator. IEEE International Geoscience and Remote Sensing Symposium 3, 1384–1386 (2002)

167.Wehr, A., Lohr, U.: Airborne laser scanning—an introduction and overview. ISPRS J. Photogramm. Remote Sens. 54, 68–82 (1999)

168.Wei, H., Bartels, M.: Unsupervized segmentation using Gabor wavelets and statistical features in LIDAR data analysis. In: Proceedings of 18th International Conference on Pattern Recognition, I, pp. 667–670 (2006)

9 3D Digital Elevation Model Generation

415

169.Weidner, U.: An approach to building extraction from digital surface models. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. 31(B3), 924–929 (1996)

170.Weidner, U.: Digital Surface Models for Building Extraction. Automatic Extraction of ManMade Objects from Aerial and Space Images (II). Birkhäuser, Basel (1997). A. Grün (ed.)

171.Weidner, U.: Analysis and comparison of different high-resolution data sets for urban applications. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(7), 750–755 (2006)

172.Weidner, U., Förstner, W.: Towards automatic building extraction from high resolution digital elevation models. ISPRS J. Photogramm. Remote Sens. 50(4), 38–49 (1995)

173.Wu, N., Feng, D.-Z., Li, J.: A locally adaptive filter of interferometric phase images. IEEE Geosci. Remote Sens. Lett. 3(1), 73–77 (2006)

174.Xu, W., Cumming, I.: A region-growing algorithm for InSAR phase unwrapping. IEEE Trans. Geosci. Remote Sens. 37(1), 124–134 (1999)

175.Yao, W., Hinz, S., Stilla, U.: Automatic vehicle extraction from airborne LIDAR data of urban areas using morphological reconstruction. In: Proceedings of 5th IAPR Workshop on Pattern Recognition in Remote Sensing (PRRS 2008) (2008). 4 pages

176.Yamaki, R., Hirose, A.: Singular unit restoration in interferograms based on complex-valued Markov random field model for phase unwrapping. IEEE Geosci. Remote Sens. Lett. 6(1), 18–22 (2009)

177.Yu, H., Li, Z., Bao, Z.: A cluster-analysis-based efficient multibaseline phase-unwrapping algorithm. IEEE Trans. Geosci. Remote Sens. 49(1), 478–487 (2011)

178.Yu, Q., et al.: An adaptive contoured window filter for interferometric synthetic aperture radar. IEEE Geosci. Remote Sens. Lett. 4(1), 23–26 (2007)

179.Yu, X., et al.: Applicability of first pulse derived digital terrain models for Boreal forest studies. Int. Arch. Photogramm. Remote Sens. Spatial Inf. Sci. XXXVI(3/W19), 97–102 (2005)

180.Zebker, H.A., et al.: The TOPSAR interferometric radar topographic mapping instrument. IEEE Trans. Geosci. Remote Sens. 30(5), 933–940 (1992)

181.Zhang, K., et al.: A progressive morphological filter for removing nonground measurements from airborne LIDAR data. IEEE Trans. Geosci. Remote Sens. 41(4), 872–882 (2003)

182.Zhang, L., Gruen, A.: Multi-image matching for DSM generation from IKONOS imagery. ISPRS J. Photogramm. Remote Sens. 60(3), 195–211 (2006)

183.Zhang, Z., et al.: A robust technique for matching two uncalibrated images through the recovery of the unknown epipolar geometry. Artif. Intell. 78(1–2), 87–119 (1995)

184.Zisk, S.H.: A new Earth-based radar technique for the measurement of lunar topography. Moon 4, 296–300 (1972)

185.Zitová, B., Flusser, J.: Image registration methods: a survey. Image Vis. Comput. 21(11), 977–1000 (2003)

Источник: https://studfile.net/preview/16498100/